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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Enhanced electrochemical performance of in situ reduced graphene oxide-polyaniline nanotubes hybrid nanocomposites using redox-additive aqueous electrolyte
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Enhanced electrochemical performance of in situ reduced graphene oxide-polyaniline nanotubes hybrid nanocomposites using redox-additive aqueous electrolyte

机译:使用氧化还原添加剂水溶液提高原位的石墨烯氧化物聚苯胺杂交纳米复合材料的电化学性能提高

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Reduced graphene oxide (RGO)-polyaniline nanotubes (PAniNTs) nanocomposites have been synthesized by in situ reduction of GO. The morphology and structure of the nanocomposites are characterized by HRTEM, XRD and micro-Raman spectroscopy. The electrical and electrochemical performances of the nanocomposites are investigated for different RGO concentrations by conductivity measurements, cyclic voltammetry, charge-discharge and electrochemical impedance spectroscopy. Highest gravimetric specific capacitance of 448.71 F g(-1) is obtained for 40 wt.% of RGO-PAniNTs nanocomposite as compared to 194.92 F g(-1) for pure PAniNTs in 1 M KCl electrolyte. To further improve the electrochemical performance of the nanocomposite electrode, KI is used as redox-additive with 1 M KCl electrolyte. Highest gravimetric specific capacitance of 876.43 F g(-1) and an improved cyclic stability of 91% as compared to 79% without KI after 5000 cycles is achieved for an optimized 0.1 M KI concentration. This is attributed to the presence of different ionic species of I-ions that give rise to a number of possible redox reactions improving the pseudocapacitance of the electrode. This improved capacitive performance is compared with that of catechol redox-additive in 1 M KCl electrolyte, and that of KI and catechol redox-additives added to 1 M H2SO4 electrolyte.
机译:通过原位还原,已经合成了石墨烯氧化物(RGO) - 聚烷纳米纳米纳米(Panints)纳米复合材料。纳米复合材料的形态和结构的特征在于HRTEM,XRD和微拉曼光谱。通过电导率测量,循环伏安法,充放电和电化学阻抗光谱研究了不同RGO浓度的纳米复合材料的电气和电化学性能。获得448.71Fg(-1)的最高重量特异性电容为40重量%。纳米复合材料的纳米复合物的%与194.92 f g(-1)相比,在1 m Kcl电解质中为纯组合。为了进一步改善纳米复合材料的电化学性能,Ki用作1M KCl电解质的氧化芳烃添加剂。最高重量比电容为876.43f g(-1),并且在实现5000次循环后,在优化的0.1m ki浓度下实现5000个循环后,改善了91%的循环稳定性为91%。这归因于存在不同离子物质的I-离子,其产生了提高电极假偶像的许多可能的氧化还原反应。将这种改进的电容性能与1M KCl电解质中的儿茶酚氧化芳烃添加剂进行了比较,并加入到1M H 2 SO 4电解质中的Ki和儿茶酚氧化还原 - 添加剂。

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